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Inductive Heating Assisted-Catalytic Dehydrogenation of Tetralin as a Hydrogen Source for Downhole Catalytic Upgrading of Heavy Oil

机译:Tetralin的电感加热辅助催化脱氢作为井下催化升级的氢气源

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The Toe-to-Heel Air Injection (THAI) combined with a catalytic add-on (CAPRI, CATalytic upgrading PRocess In-situ) have been a subject of investigation since 2002. The major challenges have been catalyst deactivation due to coke deposition and low temperatures (similar to 300 degrees C) of the mobilised hot oil flowing over the catalyst packing around the horizontal well. Tetralin has been used to suppress coke formation and also improve upgraded oil quality due to its hydrogen-donor capability. Herein, inductive heating (IH) incorporated to the horizontal production well is investigated as one means to resolve the temperature shortfall. The effect of reaction temperature on tetralin dehydrogenation and hydrogen evolution over NiMo/Al2O3 catalyst at 250-350 degrees C, catalyst-to-steel ball ratio (70% v/v), 18 bar and 0.75 h(-1) was investigated. As temperature increased from 250 to 350 degrees C, tetralin conversion increased from 40 to 88% while liberated hydrogen increased from 0.36 to 0.88 mol based on 0.61 mol of tetralin used. The evolved hydrogen in situ hydrogenated unreacted tetralin to trans and cis-decalins with the selectivity of cis-decalin slightly more at 250 degrees C while at 300-350 degrees C trans-decalin showed superior selectivity. With IH the catalyst bed temperature was closer to the desired temperature (300 degrees C) with a mean of 299.2 degrees C while conventional heating is 294.3 degrees C. This thermal advantage and the nonthermal effect from electromagnetic field under IH improved catalytic activity and reaction rate, though coke formation increased.
机译:自2002年以来,饲料与催化附加(钙丙,催化升级过程)结合催化附加(Capri,催化升级过程)是调查的主题。由于焦炭沉积和低,主要挑战是催化剂失活催化剂失活在水平阱周围流过催化剂包装的动员的热油的温度(类似于300摄氏度)。转罗林已被用于抑制焦炭形成,并且由于其氢供体能力,还提高了升级的油质。在此,研究了掺入水平生产井的电感加热(IH)作为解析温度短降的一种方法。研究了反应温度对250-350℃,催化剂 - 钢球比(70%v / v),18巴和0.75h(-1)的Nimo / Al 2 O 3催化剂上的四氢萘脱氢和氢进化的影响。随着温度从250升增加到350℃,转罗林转化率从40%增加到88%,而释放的氢从0.66摩尔使用的转泌萘增加0.36至0.88mol。在250℃下,在250℃下略微较多,在250℃下略微更多地氢化未反应的向甲蛋白的进化氢气和顺式癸蛋白的进化氢气和顺式癸烷含有较高。通过IH,催化剂床温度更接近所需的温度(300℃),其平均值为299.2℃,而常规加热为294.3℃。该热优势和IH电磁场下的非热效果改善了催化活性和反应速率尽管焦炭形成增加。

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